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Cage-bell Pt-Pd nanostructures with enhanced catalytic properties and superior methanol tolerance for oxygen reduction reaction

机译:笼式钟形Pt-Pd纳米结构具有增强的催化性能和出色的甲醇耐受性,可进行氧还原反应

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Precisely tailoring the structure and fully making use of the components of nanoparticles are effective to enhance their catalytic performance for a given reaction. We herein demonstrate the design of cage-bell structured Pt-Pd nanoparticles, where a Pd shell is deliberately selected to enhance the catalytic property and methanol tolerance of Pt for oxygen reduction reaction. This strategy starts with the synthesis of core-shell Pt@Ag nanoparticles, followed by galvanic replacement reaction between the Ag shell and Pd(2+) ions to form core-shell-shell Pt@Ag@Ag-Pd nanoparticles with a Pt core and double shells composed of Ag at inner and alloy Ag-Pd at outer, respectively. Then, the core-shell-shell templates are agitated with saturated NaCl solution to eliminate the Ag component from the double shells, leading to the formation of bimetallic Pt-Pd nanoparticles with a cage-bell structure, defined as a movable Pt core enclosed by a porous Pd shell, which show enhanced catalytic activity for oxygen reduction compared with that of the Pt seeds due to the additional catalysis from Pd shell. In addition, owing to the different diffusion behavior of methanol and oxygen molecules in the porous Pd shell, the Pt-Pd cage-bell nanostructures also exhibit superior methanol tolerant property in catalyzing the oxygen reduction.
机译:精确定制结构并充分利用纳米颗粒的成分可有效提高其在给定反应中的催化性能。我们在本文中证明了鼠铃结构的Pt-Pd纳米颗粒的设计,其中故意选择了Pd壳层以增强Pt对氧还原反应的催化性能和甲醇耐受性。该策略首先合成核-壳Pt @ Ag纳米颗粒,然后在Ag壳与Pd(2+)离子之间进行电流置换反应,以形成具有Pt核的核-壳-壳Pt @ Ag @ Ag-Pd纳米颗粒分别由内部的Ag和外部的Ag-Pd合金组成的双壳。然后,将核-壳-壳模板与饱和NaCl溶液一起搅拌,以消除双壳中的Ag成分,从而导致形成具有笼钟形结构的双金属Pt-Pd纳米颗粒,定义为可移动的Pt核一种多孔的Pd壳,由于Pd壳的额外催化作用,与Pt种子相比,它显示出更高的氧还原催化活性。此外,由于甲醇和氧气分子在多孔Pd壳中的扩散行为不同,Pt-Pd笼形铃状纳米结构在催化氧还原反应中也表现出优异的耐甲醇性。

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